FACE MASK MANUFACTURING MACHINE
A face mask manufacturing machine includes a platform, a first-side edge fusion module, a second-side edge fusion module, a folding device, and a center line fusion module. The first-side and second-side edge fusion modules and the center line fusion module each comprise a pneumatic cylinder, which is operatively coupled to automatic control facility for carrying out automatic operation to thereby reduce the labor needed for operating fusion facility and enhance manufacturing efficiency.
(a) Technical Field of the Invention
The present invention relates to a face mask manufacturing machine, and in particular to a face mask manufacturing machine that fully automatic to thereby reduce the operation labors and avoid negative influence on the feeding and fusion efficiency caused by inconsistency of human operation.
(b) Description of the Prior Art
A face mask is often used to isolate and shielding against dusts, contaminations and bacteria or viruses. The face mask is almost a must at the time when a disease is transmitted through air.
The face mask is also used by for example a motorcycle riders, a cooker, or a chemical facility operator and is used in potentially toxicant environments, such as oil refinery facility and chemical plants. The face mask helps to prevent the operators from taking in excessive amount of toxicant substance or materials. However, the mask itself is subject to contamination and/or deterioration of performance thereof after it has been used for a long time. Thus, a new mask must be used to replace the old, contaminated or performance-reduced mask. As a result of the frequent replacement of the face masks, the manufactures of face mask must be fully capable to supply a large quantity of face mask in certain situations in order to satisfy the need of the market.
Currently, the face mask is formed by an initial process of first folding a piece of multilayer cloth, followed by fusion. A subsequent intermediate process including sewing and cutting is then carried out to form a semi-finished product of face mask. Thereafter, accessories, such as a nose clip, are then added to the semi-finished product in a further subsequent process to complete the making of the face mask. In these processes, a number of steps are assisted by human labors. For example, the raw material is fed manually and the fusion operation is also carried out manually. Under this condition, the individual performance of the operators that carry out the above discussed operations may has significant influence on the manufacturing speed and precision of the semi-finished products of the face mask an also have influence on the quality and throughput of face masks.
Thus, the present invention is aimed to overcome the above discussed problems by providing a face mask manufacturing machine that can operate in an automatic manner.
SUMMARY OF THE INVENTIONThe primary purpose of the present invention is to in view of the above, the present invention provides a free mask manufacturing machine that overcomes the drawback of the prior art that a lot of human labor is needed in the manufacturing of face masks.
Thus, an objective of the present invention is to provide a face mask manufacturing machine comprising a mask fusion apparatus, the mask fusion apparatus comprising:
a platform;
a first-side edge colon module arranged on the platform, comprising a frame, at least one first pneumatic cylinder, a first fusion die, a first ultrasonic heating device, and a first die cushion, the frame being arranged on and extending from a top surface of the platform, the first pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the first fusion module being mounted to a lower end of the linear shaft to press onto a multilayer cloth to form a first-side edge contour of the mask, the first ultrasonic heating device being mounted to the frame and coupled to the first fusion die in order to induce ultrasonic vibration on and thus heating the first fusion die to increase temperature of the first fusion die for heat-fusion of the first-side edge contour of the multilayer cloth, the first die cushion being arranged in the platform in a vertically moveable manner at a location below the first fusion die;
a second-side edge fusion module arranged on the platform and adjacent to the first-side edge fusion module in a forward direction, comprising a frame, at least one second pneumatic cylinder, a second fusion die, a second ultrasonic heating device, and a second die cushion, the frame being arranged on and extending from the top surface of the platform, the second pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the second fusion module being mounted to a lower end of the linear shaft to press onto the multilayer cloth to form a second-side edge contour of the mask, the second ultrasonic heating device being mounted to the frame and coupled to the second fusion die in order to induce ultrasound vibration on and thus heating the second fusion die to increase temperature of the second fusion die for heat-fusion of the second-side edge contour of the multilayer cloth, the second die cushion being arranged in the platform in a vertically movable manner at a location below the second fusion die;
a folding device arranged on the platform and adjacent to the second-side edge fusion module in the forward direction, comprising a guide board assembly and a guide roller set, the guide board assembly being arranged on the platform and comprising a guide board, which has a forward end portion forming a conic shape and an expanded rearward end portion opposing the second-side edge lesion module for guiding the multilayer cloth toward the forward end portion thereof for folding the multilayer cloth, the guide roller set being arranged on the top surface of the platform and adjacent to the forward end portion of the guide board, the guide roller set comprising two guide rollers that are horizontally adjacent to each other for driving the folded multilayer cloth through therebetween; and
a center line fusion module arranged on the top surface of the platform and adjacent to the folding device, the center line fusion module comprising a frame, at least one third pneumatic cylinder, a third fusion die, a third ultrasonic heating device, and a third die cushion, the frame being arranged on and extending from the top surface of the platform, the third pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the third fusion module being mounted to a lower end of the linear shaft to press onto the multilayer cloth to form a center line contour of the mask, the third ultrasonic heating device being mounted on the frame and coupled to the third fusion die in order to induce ultrasonic vibration on and thus heating the third fusion die to increase temperature of the third fusion die for heat-fusion of the center line contour of the multilayer cloth, the third die cushion being arranged in the platform in a vertically movable manner at a location below the third fusion die.
The platform is provided with a feed roller set arranged at a rearward side of the first-side edge fusion module, the feed roller set being arranged on the top surface of the platform and comprising two brackets and two feed rollers, the brackets being mounted on the top surface of the platform, the feed rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the feed rollers for conveying foe multilayer cloth in the forward direction toward the first-side edgy fusion module.
The platform is further provided with a conveyance roller set arranged between the second-side edge fusion module and the folding device, the conveyance roller set comprising two brackets and two conveyance rollers, the brackets being mounted on the top surface of the platform, the conveyance rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the conveyance rollers and conveying the multilayer cloth toward the folding device.
The guide board assembly of the folding device comprises two support brackets and a support roller, the support brackets being mounted on the top surface of the platform and adjacent to the conveyance roller set in the forward direction, the support roller being rotatably mounted between the support brackets to support the multilayer cloth, the guide beard being mounted to the brackets.
The guide roller set comprises two brackets mounted to the top surface of the platform, the guide rollers being rotatably mounted between the brackets.
The platform is further provided with a conveyance roller set arranged between the folding device and the center line fusion module, the conveyance roller set comprising two brackets and two conveyance rollers, the brackets being mounted on the top surface of platform, the conveyance rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the conveyance rollers and conveying the multilayer cloth toward the center line lesion module.
In the above arrangement, the first, second, and third pneumatic cylinders can be connected to automatic control facility, such as an industrial computer, to automatically carry out fusion operation on the multilayer cloth with the fusion dies. This eliminates the need of human labor for operating fusion facility thereby reducing the inconsistency of quality caused by human error and enhancing throughput of face masks. Consequently, the quality of face mask, can be enhanced and the costs reduced.
The face mask manufacturing machine may further comprises a mask cutting apparatus, which is arranged next to the mask lesion apparatus at a location adjacent to the center line fusion module, the mask curling apparatus comprising:
a table having a top surface on which two rails are mounted, two caterpillar track sets being further provided on the top surface of the table and corresponding to the rails respectively, each caterpillar track set comprising a plurality of rollers rotatably mounted to the table and a caterpillar band surrounding the rollers;
two carrier sets respectively coupled to the caterpillar track sets for circulatory movement along the caterpillar track, each carrier set comprising a plurality of carriers arranged along the corresponding caterpillar band, each carrier comprising a chassis and a plurality of clamps pivotally mounted to the chassis for selectively clamping a mask material;
two closing mechanisms arranged on opposite edge portions of a rearward end portion of the table and corresponding to the caterpillar track sets respectively, each closing mechanism comprising a frame, a first pneumatic cylinder, and a push board, the name being mounted to the table, the first pneumatic cylinder being mounted to a top end of the frame and having a vertically movable linear shall, the push board being mounted to an end of the linear shaft and being operable to engage and thus upward push, the clamps of the carrier that is moved along the caterpillar track to a location corresponding to the closing mechanism, so as to rotate the clamps with respect to the chassis thereby dosing the clamps to allow the clamps and the chassis of the carrier to grip the mask material therebetween;
a cutting mechanism arranged on the table and located above the rails and the carrier sets, the cutting mechanism comprising a support frame, a cutter die cushion, an upper hydraulic cylinder, and a cutter die, the cutter die cushion being arranged in the top surface of the table in a vertically movable manner the upper hydraulic cylinder being mounted to the support frame and adjacent to the cutter die and having a vertically movable linear shaft, the cutter die being arranged at a location corresponding to a space between the two rails and in alignment with the cutter die cushion and the mask material, the cutter die being mounted to a lower end of the linear shaft of the upper hydraulic cylinder and being vertically movable therewith to cooperate with upward movement of the cutter die cushion to clamp the mask material for cutting;
two opening mechanisms arranged on opposite edge portions of a forward end portion of the table and corresponding to the caterpillar track sets respectively and adjacent to the cutting mechanism, each opening mechanism composing a frame, a third pneumatic cylinder, and a depressing board, the frame being mounted to the table, the third pneumatic cylinder being mounted to a top end of the frame and having a vertically movable linear shaft the depressing board being mounted to an end of the linear shall and being operable to downward depress the clamps of the carrier that is moved along the caterpillar track to a location corresponding to the opening mechanism so as to rotate the clamps with respect to the chassis to thereby open the clamps; and
a waste clearing device arranged on the table at the forward end portion thereof and adjacent to the opening mechanisms, the waste clearing device comprising a crossbar, a drive roller, a pneumatic cylinder, and a drive rod, the crossbar being mourned between the frames of the opening mechanisms, the drive roller being rotatably mounted to the crossbar to allow a length of waste of the mask material to wrap therearound, the pneumatic cylinder being mounted to the crossbar and adjacent to the drive roller, the drive rod being coupled to the pneumatic cylinder in vertically movable manner to selectively depress against the waste so as to pull and drag the waste.
The foregoing object and summary provide only a brief introduction to the present, invention. To fully appreciate these and other objects of the present invention as well as the invention, itself all of which will become apparent to those skilled in the art, the following detailed description of the invention and the claims should be read in conjunction with the accompanying drawings. Throughout the specification and drawings identical reference numerals refer to identical or similar parts.
Many other advantages and features of the present invention will become manifest to those versed in the art upon making reference to the detailed description and the accompanying sheets of drawings in which a preferred structural embodiment incorporating the principles of the present invention is shown by way of illustrative example.
The following descriptions are of exemplary embodiments only, and are not intended to limit the scope, applicability or configuration of the invention in any way. Rather, the following description provides a convenient illustration for implementing exemplary embodiments of the invention. Various chances to the described embodiments may be made in the function and arrangement of the elements described without departing from the scope of the invention as set forth in the appended claims.
With reference to the drawings, a face mask manufacturing machine constructed in accordance with the present invention generally comprises a mask fusion apparatus, which is particularly shown in
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The folding device 50 is arranged on the platform 100 and is adjacent to the second-side edge fusion module 30 in the forward direction. The folding device 50 comprises a guide board assembly 51 and a guide roller set 52.
The guide board assembly 51 is arranged on the platform 100 and comprises a guide board 513, which has a forward end portion forming a conic shape and an expanded rearward end portion opposing the second-side edge fusion module 30 for guiding the multilayer cloth 80 toward the forward end portion of the guide board 513 for folding the multilayer cloth 80.
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When the first-side edge contour A, the second-side edge contour B, and the center line contour C of the multilayer cloth 80 are formed, a first semi-finished product 85 of face mask having a complete edge contour is completed. Subsequent, the cloth 80 is subject to cutting along the complete edge contour that has just formed to separate the first semi-finished product from the cloth 80 thereby forming an individual object, as shown in
Preferably, the platform 100 is provided with a feed roller set 10, which is arranged at a rearward side of the first-side edge fusion module 20. The feed roller set 10 is arranged on the top surface of the platform 100 and comprises two brackets 15 and two feed rollers 11. The brackets 15 are mounted on the top surface of the platform 100. The feed rollers 11 are rotatably mounted between the brackets 15 and are vertically adjacent to each other for driving the multilayer cloth 80 through between the feed rollers 11 for conveying the multilayer cloth 80 in the forward direction toward the first-side edge fusion module 20.
Preferably, the platform 100 is provided wife a first conveyance roller set 40 arranged between the second-side edge fusion module 30 and the folding device 50. The first conveyance roller set 40 comprises two brackets 45 and two conveyance rollers 41. The brackets 45 are mounted on the top surface of the platform 100. The conveyance rollers 41 are rotatably mounted between the brackets 45 and are vertically adjacent to each other for driving the multilayer cloth 80 through between the conveyance rodeos 41 and conveying the multilayer cloth 80 toward the folding device 50.
Preferably, the guide board assembly 51 of the folding device 50 further comprises two support brackets 511 and a support roller 512. The support brackets 511 are mounted on the top surface of the platform 100 and are adjacent to the first conveyance roller set 40 in the forward direction. The support roller 512 is rotatably mounted between the support brackets 511 to support the multilayer cloth 80. The guide board 513 is mounted to the brackets 511.
Preferably, the grade roller set 52 further comprises two brackets 514 mounted to the top surface of the platform 100. The guide rollers 515 are rotatably mounted between the brackets 514.
Preferably, the platform 100 is further provided with a second conveyance roller set 60 arranged between the folding device 50 and the center line fusion module 70. The second conveyance roller set 60 comprises two brackets 65 and two conveyance rollers 61. The brackets 65 are mounted on the top surface of the platform 100. The conveyance rollers 61 are rotatably mounted between the brackets 65 and are vertically adjacent to each other for driving the multilayer cloth 80 through between the conveyance rollers 61 and conveying the multilayer cloth 80 toward the center line fusion module 70.
In the above arrangement, the first, second, and third pneumatic cylinders 22, 32, 72 and the first, second, and third ultrasonic heating device 23, 33, 73 can all be connected to automatic control facility, such as an industrial computer, to automatically drive the first, second and third fusion dies 25, 35, 75 to carry out fusion operation on the multilayer cloth. This eliminates the need of human labor for operating fusion facility thereby avoiding reduction of manufacturing quality and throughput of the first semi-finished product 85 caused by inconsistency resulted from manual operation. Consequently, the quality of the semi-finished product of the face mask can be enhanced and the costs reduced.
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In the above arrangement, the first pneumatic cylinder, the upper hydraulic cylinder 152, and the third pneumatic cylinder can be power-driven so as to control the operation of die push board 142, the depressing board 162, and the cutter die 154. Further, the carrier sets can be connected to a driving motor for self-circulatory movement. Thus, the operation of the mask cutting apparatus in accordance with the present invention can be carried out completely without intervening of human labor thereby realizing full automation, of production of semi-finished products of face masks, leading to reduction of labor costs and increasing of manufacturing speed and passing rate.
Although the present invention bus been described with reference to the preferred embodiment thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.
It will be understood that each of the elements described above, or two or more together may also find a useful application in other types of methods differing from the type described above.
While certain novel features of this invention have been shown and described and are pointed out in the annexed claim, it is not intended to be limited to the details above, since it will be understood that various omissions, modifications, substitutions and changes in the forms and details of the device illustrated and in its operation can be made by those skilled in the art without departing in any way from the spirit of the present invention.
Claims
1. A face mask manufacturing machine comprising a mask fusion apparatus, the mask fusion apparatus comprising:
- a platform;
- a first-side edge fusion module arranged on the platform, comprising a frame, at least one first pneumatic cylinder, a first fusion die, a first ultrasonic heating device, and a first die cushion, the frame being arranged on and extending from a top surface of the platform, the first pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the first fusion module being mounted to a lower end of the linear shaft to press onto a multilayer cloth to form a first-side edge contour of the mask, the first ultrasonic heating device being mounted to the frame and coupled to the first fusion die in order to induce ultrasonic vibration on and thus heating the first fusion die to increase temperature of the first fusion die for heat-fusion of the first-side edge contour of the multilayer cloth, the first die cushion being arranged in the platform in a vertically movable manner at a location below the first fusion die;
- a second-side edge fusion module arranged on the platform and adjacent to the first-side edge fusion module in a forward direction, comprising a frame, at least one second pneumatic cylinder, a second fusion die, a second ultrasonic heating device, and a second die cushion, the frame being arranged on and extending from the top surface of the platform, the second pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the second, fusion module being mounted to a lower end of the linear shaft to press onto the multilayer cloth to form a second-side edge contour of the mask, the second ultrasonic heating device being mounted to the frame and coupled to the second fusion die in order to induce ultrasonic vibration on and thus heating the second fusion die to increase temperature of the second fusion die for heat-fusion of the second-side edge contour of the multilayer cloth, the second die cushion being arranged in the platform in a vertically movable manner at a location below the second fusion die;
- a folding device arranged on the platform and adjacent to the second-side edge fusion module in the forward direction, comprising a guide board assembly and a guide roller set, the guide board assembly being arranged on the platform and comprising a guide board, which has a forward end portion forming a conic shape and an expanded rearward end portion opposing the second-side edge fusion module for guiding the multilayer cloth toward the forward end portion thereof for folding the multilayer cloth, the guide roller set being arranged on the top surface of the platform and adjacent to the forward end portion of the guide board, the guide roller set comprising two guide rollers that are horizontally adjacent to each other for driving the folded multilayer cloth through therebetween; and
- a center line fusion module arranged on the top surface of the platform and adjacent to the folding device, the center line fusion module comprising a frame, at least one third pneumatic cylinder, a third, fusion die, a third ultrasonic heating device, and a third die cushion, the frame being arranged on and extending from the top surface of the platform, the third pneumatic cylinder being mounted to the frame and having a vertically movable linear shaft, the third fusion module being mounted to a lower end of the linear shaft to press onto the multilayer cloth to form a center line contour of the mask, the third ultrasonic heating device being mounted on the frame and coupled to the third fusion die in order to induce ultrasonic vibration on and thus heating the third fusion die to increase temperature of the third fusion die for heat-fusion of the center line contour of the multilayer cloth, the third die cushion being arranged in the platform in a vertically movable manner at a location below the third fusion die.
2. The face mask manufacturing machine as claimed in claim 1, wherein the platform is provided with a feed roller set arranged at a rearward side of the first-side edge fusion module, the feed roller set being arranged on the top surface of the platform and comprising two brackets and two feed rollers, the brackets being mounted on the top surface of the platform, the feed rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the feed rollers for conveying the multilayer cloth in the forward direction toward the first-side edge fusion module.
3. The face mask manufacturing machine as claimed in claim 2, wherein the platform is provided with a conveyance roller set arranged between the second-side edge fusion module and the folding device, the conveyance roller set comprising two brackets and two conveyance rollers, the brackets being mounted on the top surface of the platform, the conveyance rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the conveyance rollers and conveying the multilayer cloth toward the folding device.
4. The race mask manufacturing machine as claimed in claim 3, wherein the guide board assembly of the folding device further comprises two support brackets and a support roller, the support brackets being mounted on the top surface of the platform and adjacent to the conveyance roller set in the froward direction, the support roller being rotatably mounted between the support brackets to support the multilayer cloth, the guide board being mounted to the brackets.
5. The face mask manufacturing machine as claimed in claim 4, wherein the guide roller set comprises two brackets mounted to the top surface of the platform, the guide rollers being rotatably mounted between the brackets.
6. The face mask manufacturing machine as claimed in claim 5, wherein the platform is provided with a conveyance roller set arranged between the folding device and the center line fusion module, the conveyance roller set comprising two brackets and two conveyance rollers, the brackets being mounted on the top surface of the platform, the conveyance rollers being rotatably mounted between the brackets and vertically adjacent to each other for driving the multilayer cloth through between the conveyance rollers and conveying the multilayer cloth toward the center line fusion module.
7. The face mask manufacturing machine as claimed in claim 1 further comprising a mask cutting apparatus, which is arranged next to the mask fusion apparatus at a location adjacent to the center line fusion module, the mask cutting apparatus comprising:
- a table having a top surface on which two rails are mounted, two caterpillar track sets being further provided on the top surface of the table and corresponding to the rails respectively, each caterpillar track set comprising a plurality of rollers rotatably mounted to the table and a caterpillar band surrounding the rollers;
- two carrier sets respectively coupled to the caterpillar track sets for circulatory movement along the caterpillar track, each carrier set comprising a plurality of carriers arranged along the corresponding caterpillar band, each carrier comprising a chassis and a plurality of clamps pivotally mounted to the chassis for selectively clamping a mask material;
- two closing mechanisms arranged on opposite edge portions of a rearward end portion, of the table and corresponding to the caterpillar track sets respectively, each, closing mechanism comprising a frame, a first pneumatic cylinder, and a push board, the frame being mounted to the table, the first pneumatic cylinder being mounted to a top end of the frame and having a vertically movable linear shaft, the push board being mounted to an end of the linear shaft and being operable to engage and thus upward push the clamps of the carrier that is moved along the caterpillar track to a location corresponding to the closing mechanism so as to rotate the clamps with respect to the chassis thereby closing the clamps to allow the clamps and the chassis of the carrier to grip the mask material therebetween;
- a cutting mechanism arranged on the table and located above the rails and the carrier sets, the cutting mechanism comprising a support frame, a cutter die cushion, an upper hydraulic cylinder, and a cutter die, the cutter die cushion being arranged in the top surface of the table in a vertically movable manner, the upper hydraulic cylinder being mounted to the support frame and adjacent to the cutter die and having a vertically movable linear shaft, the cutter die being arranged at a location corresponding to a space between the two rails and in alignment with the cutter die cushion and die mask material, the cutter die being mounted to a lower end of the linear shaft of the upper hydraulic cylinder and being vertically movable therewith to cooperate with upward movement of the cutter die cushion to clamp the mask material for cutting;
- two opening mechanisms arranged on opposite edge portions of a forward end portion of the table and corresponding to the caterpillar track sets respectively and adjacent to the cutting mechanism, each opening mechanism comprising a frame, a third pneumatic cylinder, and a depressing board, the home being mounted to the table, the third pneumatic cylinder being mounted to a top end of the frame and having a vertically movable linear shaft, the depressing board being mounted to an end of the linear shaft and being operable to downward depress the clamps of the carrier that is moved along the caterpillar track to a location corresponding to the opening mechanism so as to rotate the clamps with respect to the chassis to thereby open the clamps; and
- a waste clearing device arranged on the table at the forward end portion thereof and adjacent to the opening mechanisms, the waste clearing device comprising a crossbar, a drive roller, a pneumatic cylinder, and a drive rod, the crossbar being mounted between the frames of the opening mechanisms, the drive roller being rotatably mounted to the crossbar to allow a length of waste of the mask material to wrap therearound, the pneumatic cylinder being mounted to the crowbar and adjacent to the drive roller, the drive rod being coupled to the pneumatic cylinder in vertically movable manner to selectively depress against the waste so as to pull and drag the waste.
Type: Application
Filed: Apr 16, 2007
Publication Date: Oct 16, 2008
Patent Grant number: 7635015
Inventor: Hung-Ho CHEN (Tu Cheng City)
Application Number: 11/735,497
International Classification: B06B 3/00 (20060101);